کد مقاله کد نشریه سال انتشار مقاله انگلیسی نسخه تمام متن
811089 1469134 2012 13 صفحه PDF دانلود رایگان
عنوان انگلیسی مقاله ISI
Mechanical characterization and non-linear elastic modeling of poly(glycerol sebacate) for soft tissue engineering
موضوعات مرتبط
مهندسی و علوم پایه سایر رشته های مهندسی مهندسی پزشکی
پیش نمایش صفحه اول مقاله
Mechanical characterization and non-linear elastic modeling of poly(glycerol sebacate) for soft tissue engineering
چکیده انگلیسی

Scaffold tissue engineering strategies for repairing and replacing soft tissue aim to improve reconstructive and corrective surgical techniques whose limitations include suboptimal mechanical properties, fibrous capsule formation and volume loss due to graft resorption. An effective tissue engineering strategy requires a scaffolding material with low elastic modulus that behaves similarly to soft tissue, which has been characterized as a nonlinear elastic material. The material must also have the ability to be manufactured into specifically designed architectures. Poly(glycerol sebacate) (PGS) is a thermoset elastomer that meets these criteria. We hypothesize that the mechanical properties of PGS can be modulated through curing condition and architecture to produce materials with a range of stiffnesses. To evaluate this hypothesis, we manufactured PGS constructs cured under various conditions and having one of two architectures (solid or porous). Specimens were then tensile tested according to ASTM standards and the data were modeled using a nonlinear elastic Neo–Hookean model. Architecture and testing conditions, including elongation rate and wet versus dry conditions, affected the mechanical properties. Increasing curing time and temperature led to increased tangent modulus and decreased maximum strain for solid constructs. Porous constructs had lower nonlinear elastic properties, as did constructs of both architectures tested under simulated physiological conditions (wetted at 37 °C). Both solid and porous PGS specimens could be modeled well with the Neo–Hookean model. Future studies include comparing PGS properties to other biological tissue types and designing and characterizing PGS scaffolds for regenerating these tissues.

Figure optionsDownload high-quality image (219 K)Download as PowerPoint slideHighlights
► We cure PGS using five combinations of curing time and temperature.
► We tensile test and fit a Neo–Hookean model to PGS cured under the five conditions.
► Solid modulus increased as the curing time and temperature increased.
► Solid and porous PGS is modeled well with a nonlinear elastic Neo–Hookean model.
► Introduction of porosity also decreases the nonlinear elastic properties of PGS.

ناشر
Database: Elsevier - ScienceDirect (ساینس دایرکت)
Journal: Journal of the Mechanical Behavior of Biomedical Materials - Volume 11, July 2012, Pages 3–15
نویسندگان
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